Feeding mechanism of regenerated rubber desulfurization tank

By designing an automated recycled rubber desulfurization tank loading mechanism, using motors, threaded rods, sliders and other components, the automatic loading of the storage shell is achieved, which solves the problems of frequent manual labor and inefficiency caused by manual loading in the prior art, and improves work efficiency and equipment use efficiency.

CN222972570UActive Publication Date: 2025-06-13SHANDONG HUIXIANG RUBBER & PLASTIC TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422196940.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-09
Publication Date
2025-06-13
Estimated Expiration
2034-09-09

AI Technical Summary

Technical Problem

Existing recycled rubber desulfurization tanks require manual feeding by staff, which leads to frequent physical labor, which can easily lead to fatigue and affect work efficiency and processing efficiency.

Method used

A recycled rubber desulfurization tank loading mechanism is designed, including the loading mechanism body, and the vertical movement and automatic loading of the storage shell are achieved by using the cooperation of motor, threaded rod, slider, storage shell, electric push rod and controller.

Benefits of technology

Through automated loading operations, the staff's physical labor is reduced, and the work efficiency and the use efficiency of recycled rubber desulfurization tanks are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a feeding mechanism of a regenerated rubber devulcanizer, which relates to the technical field of regenerated rubber processing and comprises a feeding mechanism body, the feeding mechanism body comprises a support, a motor is mounted at the top of the support, a threaded rod is mounted at the output end of the motor, a sliding block is sleeved on the outer surface of the threaded rod in a threaded manner, and the sliding block is fixed on the support. A material storage shell is fixed to the front surface of the sliding block, and a flow guide shell is slidably connected between grooves in the two sides of the material storage shell. According to the feeding mechanism, the feeding mechanism body is arranged, so that feeding operation can be automatically carried out when the regenerated rubber desulfurization tank is used, the situation that working efficiency is affected due to fatigue of workers caused by long-time manual feeding operation of the workers is avoided, the using effect of the regenerated rubber desulfurization tank is improved, and the working efficiency of the regenerated rubber desulfurization tank is improved. Meanwhile, the use efficiency of the regenerated rubber desulfurization tank is also improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of recycled rubber processing, in particular to a feeding mechanism for a recycled rubber desulfurization tank. Background Technique

[0002] Recycled rubber refers to waste vulcanized rubber that has been processed through physical and chemical methods such as pulverization, heating, and mechanical treatment to regain plasticity and processability and can be used again in the production of rubber products. The processing of recycled rubber requires operations such as collecting, sorting, pulverizing, desulfurizing, and refining waste rubber to remove impurities, break the cross-linked structure formed by vulcanization, and adjust the performance indicators of the rubber. Finally, recycled rubber products meeting specific requirements and standards are made. When recycled rubber particles are subjected to desulfurization treatment, a recycled rubber desulfurization tank is required.

[0003] When most existing recycled rubber desulfurization tanks are in use, manual feeding operations are required by workers. Manual feeding usually requires workers to perform frequent physical labor, and long-term work easily causes worker fatigue, thus affecting work efficiency, that is, reducing the processing efficiency of recycled rubber, reducing the use effect of the recycled rubber desulfurization tank, and at the same time reducing the use efficiency of the recycled rubber desulfurization tank.

[0004] Therefore, a feeding mechanism for a recycled rubber desulfurization tank needs to be proposed to solve the above-mentioned technical problems. Content of the Utility Model

[0005] The purpose of the utility model is to solve the problem that when most existing recycled rubber desulfurization tanks are in use, manual feeding operations are required by workers. Manual feeding usually requires workers to perform frequent physical labor, and long-term work easily causes worker fatigue, thus affecting work efficiency, that is, reducing the processing efficiency of recycled rubber, reducing the use effect of the recycled rubber desulfurization tank, and at the same time reducing the use efficiency of the recycled rubber desulfurization tank. A feeding mechanism for a recycled rubber desulfurization tank is proposed.

[0006] To achieve the above purpose, the utility model adopts the following technical scheme: A feeding mechanism for a recycled rubber desulfurization tank, including: the main body of the feeding mechanism, the main body of the feeding mechanism includes a bracket, a motor is installed on the top of the bracket, a threaded rod is installed at the output end of the motor, a slider is threadedly sleeved on the outer surface of the threaded rod, a storage shell is fixed on the front surface of the slider, a diversion shell is slidably connected between the two groove positions on both sides of the storage shell, electric push rods are installed on both sides and the bottom of the storage shell, two U-shaped blocks are fixed at the bottom of the storage shell, an L-shaped block is movably sleeved between the interiors of the two U-shaped blocks, and a controller is installed on the surface of the bracket.

[0007] Preferably, the motor is electrically connected to the controller. The bottom end of the threaded rod movably penetrates through the top of the bracket, and the bottom end of the threaded rod is movably embedded in the bottom of the inner wall of the bracket. Both sides of the slider are in contact with both sides of the inner wall of the bracket. The number of electric push rods installed on both sides of the storage shell is one, and the number of electric push rods installed at the bottom of the storage shell is two.

[0008] Preferably, the four electric push rods are divided into two groups. One end of the telescopic end of one group of electric push rods is installed on the surface of the diversion shell, and one end of the telescopic end of the other group of electric push rods is installed on the surface of the L-shaped block. The top of the L-shaped block is in contact with the bottom of the storage shell, and the L-shaped block is located at the discharge port of the storage shell. Each group of electric push rods is electrically connected to the controller.

[0009] Preferably, two symmetrically arranged round rods are fixed on the upper side of the bracket. A connecting block is movably sleeved between the outer surfaces of the two round rods. A fixed block is fixed on the surface of the bracket near the top position.

[0010] Preferably, a perforated block is fixed on the surface of the bracket. A rectangular block is movably sleeved inside the through hole of the perforated block. A protective shell is fixed on the top of the rectangular block. Two symmetrically arranged auxiliary wheels are installed on the storage shell.

[0011] Preferably, the tops of the two round rods are fixed to the bottom of the fixed block, and the front surface of the connecting block is fixed to the rear surface of the slider.

[0012] Preferably, the surfaces of the wheels of the two auxiliary wheels are both in contact with the surface of the bracket, and the controller is located inside the protective shell.

[0013] Compared with the prior art, the advantages and positive effects of the present utility model are as follows.

[0014] 1. In the present utility model, by setting up the feeding mechanism body, the regenerative rubber desulfurization tank can automatically perform the feeding operation during use, avoiding the situation that workers manually perform the feeding operation for a long time, resulting in fatigue and affecting work efficiency. This not only improves the use effect of the regenerative rubber desulfurization tank but also improves its use efficiency. Through the cooperation of the controller, bracket, motor, threaded rod, and slider, the storage shell can be driven to move vertically. Through the cooperation of the electric push rod, controller, U-shaped block, and L-shaped block, it can be controlled whether the storage shell releases materials.

[0015] 2. In the present utility model, through the cooperation of the perforated block, protective shell, and rectangular block, the controller can be protected from being accidentally touched. Through the cooperation of the round rod, connecting block, and fixed block, the stability of the slider during movement can be increased. Through the action of the auxiliary wheels, the friction between the storage shell and the bracket during movement can be reduced. Brief Description of the Drawings

[0016] Figure 1 FIG. 1 is a perspective view of a feeding mechanism for a regenerated rubber desulfurization tank proposed by the present utility model;

[0017] Figure 2 FIG. 2 is a partial perspective view of a feeding mechanism for a regenerated rubber desulfurization tank proposed by the present utility model;

[0018] Figure 3 FIG. 3 is a partial sectional perspective view of a feeding mechanism for a regenerated rubber desulfurization tank proposed by the present utility model;

[0019] Figure 4 FIG. 4 is a partial perspective view of a feeding mechanism for a regenerated rubber desulfurization tank proposed by the present utility model from another angle;

[0020] Figure 5 FIG. 5 is a schematic perspective view of a protective shell and a rectangular block of a feeding mechanism for a regenerated rubber desulfurization tank proposed by the present utility model;

[0021] Figure 6 FIG. 6 is a perspective view of a diversion shell of a feeding mechanism for a regenerated rubber desulfurization tank proposed by the present utility model.

[0022] Legend: 1. Feeding mechanism body; 101. Bracket; 102. Motor; 103. Threaded rod; 104. Slide block; 105. Storage shell; 106. Diversion shell; 107. Electric push rod; 108. U-shaped block; 109. L-shaped block; 110. Controller; 2. Round rod; 3. Connecting block; 4. Fixed block; 5. Perforated block; 6. Protective shell; 7. Rectangular block; 8. Auxiliary wheel. Detailed Description of the Preferred Embodiments

[0023] In order to more clearly understand the above objects, features and advantages of the present utility model, the following further describes the present utility model with reference to the drawings and embodiments. It should be noted that, without conflict, the embodiments of the present application and the features in the embodiments may be combined with each other.

[0024] In the following description, many specific details are set forth in order to provide a thorough understanding of the present utility model. However, the present utility model may be implemented in other ways different from those described herein. Therefore, the present utility model is not limited by the specific embodiments disclosed in the following specification.

[0025] As Figures 1-6As shown in the figure, a feeding mechanism for a regenerated rubber desulfurization tank includes: a feeding mechanism body 1. The feeding mechanism body 1 includes a bracket 101. A motor 102 is installed at the top of the bracket 101. A threaded rod 103 is installed at the output end of the motor 102. A slider 104 is threadedly sleeved on the outer surface of the threaded rod 103. A storage shell 105 is fixed on the front surface of the slider 104. A diversion shell 106 is slidably connected between the two groove positions on both sides of the storage shell 105. Electric push rods 107 are installed on both sides and at the bottom of the storage shell 105. Two U-shaped blocks 108 are fixed at the bottom of the storage shell 105. An L-shaped block 109 is movably sleeved between the interiors of the two U-shaped blocks 108. A controller 110 is installed on the surface of the bracket 101. The motor 102 is electrically connected to the controller 110. The bottom end of the threaded rod 103 movably penetrates the top of the bracket 101, and the bottom end of the threaded rod 103 is movably embedded in the bottom of the inner wall of the bracket 101. The two sides of the slider 104 are in contact with the two sides of the inner wall of the bracket 101. The number of electric push rods 107 installed on both sides of the storage shell 105 is one each, and the number of electric push rods 107 installed at the bottom of the storage shell 105 is two. The four electric push rods 107 are divided into two groups. One end of the telescopic end of one group of electric push rods 107 is installed on the surface of the diversion shell 106, and one end of the telescopic end of the other group of electric push rods 107 is installed on the surface of the L-shaped block 109. The top of the L-shaped block 109 is in contact with the bottom of the storage shell 105, and the L-shaped block 109 is located at the discharge port of the storage shell 105. Each group of electric push rods 107 is electrically connected to the controller 110. Two symmetrical round rods 2 are fixed on the upper side of the bracket 101. A connecting block 3 is movably sleeved between the outer surfaces of the two round rods 2. A fixing block 4 is fixed at a position near the top on the surface of the bracket 101. A perforated block 5 is fixed on the surface of the bracket 101. A rectangular block 7 is movably sleeved in the through hole of the perforated block 5. A protective shell 6 is fixed at the top of the rectangular block 7. Two symmetrical auxiliary wheels 8 are installed on the storage shell 105. The tops of the two round rods 2 are fixed to the bottom of the fixing block 4. The front surface of the connecting block 3 is fixed to the rear surface of the slider 104. The wheel surfaces of the two auxiliary wheels 8 are in contact with the surface of the bracket 101. The controller 110 is located inside the protective shell 6.

[0026] The achieved effect is that when it is necessary to transport the recycled rubber particles into the desulfurization tank, first, an appropriate amount of recycled rubber is put into the interior of the storage shell 105. Then, the protective shell 6 is lifted vertically upward. At this time, the moving protective shell 6 will drive the rectangular block 7 to move. When the rectangular block 7 is not in contact with the through hole of the perforated block 5, the protective shell 6 can be removed. Then, the controller 110 is connected to an external power supply. After that, the motor 102 is started by using the controller 110. At this time, the started motor 102 will drive the threaded rod 103 to rotate. The rotating threaded rod 103 will drive the slider 104 to move vertically upward with the cooperation of the bracket 101. At the same time, the moving slider 104 will drive the connecting block 3 and the storage shell 105 to move together. Meanwhile, the moving storage shell 105 will drive the two electric push rods 107, the two U-shaped blocks 108, the L-shaped block 109, the diversion shell 106 and the recycled rubber placed inside the storage shell 105 to move. And the moving storage shell 105 will also drive the two auxiliary wheels 8 to roll on the surface of the bracket 101. When the storage shell 105 moves to a suitable position (the diversion shell 106 is above the feed inlet of the recycled rubber desulfurization tank), at this time, the controller 110 is used to first turn off the motor 102 and then start one of the electric push rods 107. At this time, the turned-off motor 102 will, with the cooperation of the threaded rod 103 and the bracket 101, make all the above-mentioned moving components stop moving. At the same time, the started electric push rod 107 will drive the diversion shell 106 to move on the storage shell 105. When the diversion shell 106 can no longer move, at this time, the discharge end of the diversion shell 106 is directly above the feed inlet of the recycled rubber desulfurization tank. At the same time, the controller 110 is used to first turn off one of the electric push rods 107 and then start the other electric push rod 107. At this time, the turned-off electric push rod 107 will make the diversion shell 106 stop moving. At the same time, the started electric push rod 107 will drive the L-shaped block 109 to move. When the L-shaped block 109 can no longer move, at this time, the controller 110 is used to turn off the other electric push rod 107. At the same time, the surface of the L-shaped block 109 is not in contact with the surfaces of the two U-shaped blocks 108. Meanwhile, the recycled rubber inside the storage shell 105 will be released from the storage port of the storage shell 105 into the interior of the diversion shell 106 and then be input into the interior of the recycled rubber desulfurization tank from the discharge end of the diversion shell 106. When all the recycled rubber inside the storage shell 105 is completely input into the interior of the recycled rubber desulfurization tank, at this time, reverse operations are performed according to the above operation steps to reset all the above-mentioned components back to their original positions.

[0027] Working principle: When it is necessary to transport the recycled rubber particles to the inside of the desulfurization tank, first place an appropriate amount of recycled rubber into the storage shell 105. Then, lift the protective shell 6 vertically upward. At this time, the moving protective shell 6 will drive the rectangular block 7 to move. When the rectangular block 7 is no longer in contact with the through hole of the perforated block 5, the protective shell 6 can be removed. Then, connect the controller 110 to an external power supply. After that, use the controller 110 to start the motor 102. At this time, the started motor 102 will drive the threaded rod 103 to rotate. The rotating threaded rod 103 will, with the cooperation of the bracket 101, drive the slider 104 to move vertically upward. At the same time, the moving slider 104 will drive the connecting block 3 and the storage shell 105 to move together. At the same time, the moving storage shell 105 will drive the two electric push rods 107, the two U-shaped blocks 108, the L-shaped block 109, the diversion shell 106 and the recycled rubber placed inside the storage shell 105 to move. And the moving storage shell 105 will also drive the two auxiliary wheels 8 to roll on the surface of the bracket 101. When the storage shell 105 moves to a suitable position (the diversion shell 106 is above the feed inlet of the recycled rubber desulfurization tank), at this time, use the controller 110 to first turn off the motor 102, and then start one of the electric push rods 107. At this time, the turned-off motor 102 will, with the cooperation of the threaded rod 103 and the bracket 101, make all the above-mentioned moving components stop moving. At the same time, the started electric push rod 107 will drive the diversion shell 106 to move on the storage shell 105. When the diversion shell 106 can no longer move, at this time, the discharge end of the diversion shell 106 is directly above the feed inlet of the recycled rubber desulfurization tank. At the same time, use the controller 110 to first turn off one of the electric push rods 107, and then start the other electric push rod 107. At this time, the turned-off electric push rod 107 will make the diversion shell 106 stop moving. At the same time, the started electric push rod 107 will drive the L-shaped block 109 to move. When the L-shaped block 109 can no longer move, at this time, use the controller 110 to turn off the other electric push rod 107. At the same time, the surface of the L-shaped block 109 is not in contact with the surfaces of the two U-shaped blocks 108. At the same time, the recycled rubber inside the storage shell 105 will be released from the storage port of the storage shell 105 into the inside of the diversion shell 106, and then be input into the inside of the recycled rubber desulfurization tank from the discharge end of the diversion shell 106. When all the recycled rubber inside the storage shell 105 is completely input into the inside of the recycled rubber desulfurization tank, at this time, perform the reverse operation according to the above operation steps to make all the above-mentioned components return to their original positions.

[0028] Wherein, the bottom inner wall of the storage shell 105 is an inclined surface.

[0029] The controller 110 (PLC controller), the motor 102 and the electric push rod 107 in the present utility model are all prior arts, and their working principles are all publicly known technologies. Their models can be selected according to actual situations and will not be explained in detail here.

[0030] The above are only the preferred embodiments of the present utility model, and are not intended to limit the present utility model in other forms. Any person skilled in the art may use the technical content disclosed above to make changes or modifications into equivalent embodiments with equivalent changes and apply them to other fields. However, any simple modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present utility model without departing from the content of the technical solution of the present utility model still fall within the protection scope of the technical solution of the present utility model.

Claims

1. A feeding mechanism for a regenerated rubber desulfurization tank, characterized in that: include: A feeding mechanism body (1), the feeding mechanism body (1) comprising a bracket (101), a motor (102) being mounted on the top of the bracket (101), a threaded rod (103) being mounted on the output end of the motor (102), a slider (104) being threadedly sleeved on the outer surface of the threaded rod (103), a material storage shell (105) being fixed on the front surface of the slider (104), a flow guide shell (106) being slidably connected between grooves on both sides of the material storage shell (105), electric push rods (107) being mounted on both sides of the material storage shell (105) and on the bottom of the material storage shell (105), two U-shaped blocks (108) being fixed on the bottom of the material storage shell (105), an L-shaped block (109) being movably sleeved between the insides of the two U-shaped blocks (108), and a controller (110) being mounted on the surface of the bracket (101).

2. The feeding mechanism of the regenerated rubber desulfurization tank according to claim 1 is characterized in that: The motor (102) is electrically connected to the controller (110); the bottom end of the threaded rod (103) movably passes through the top of the bracket (101); the bottom end of the threaded rod (103) is movably embedded in the bottom of the inner wall of the bracket (101); two sides of the slider (104) are in contact with two sides of the inner wall of the bracket (101); one electric push rod (107) is installed on both sides of the material storage shell (105); and two electric push rods (107) are installed at the bottom of the material storage shell (105).

3. The feeding mechanism of the regenerated rubber desulfurization tank according to claim 1 is characterized in that: The four electric push rods (107) are divided into two groups, one of which has a telescopic end mounted on the surface of the guide shell (106), and the other has a telescopic end mounted on the surface of an L-shaped block (109). The top of the L-shaped block (109) contacts the bottom of the material storage shell (105), and the L-shaped block (109) is located at the material discharge port of the material storage shell (105). Each group of electric push rods (107) is electrically connected to a controller (110).

4. The feeding mechanism of the regenerated rubber desulfurization tank according to claim 1 is characterized in that: Two symmetrical round rods (2) are fixed on the upper side of the bracket (101), a connecting block (3) is movably sleeved between the outer surfaces of the two round rods (2), and a fixing block (4) is fixed on the surface of the bracket (101) near the top.

5. The feeding mechanism of the regenerated rubber desulfurization tank according to claim 1 is characterized in that: A perforated block (5) is fixed on the surface of the bracket (101), a rectangular block (7) is movably sleeved inside the through hole of the perforated block (5), a protective shell (6) is fixed on the top of the rectangular block (7), and two symmetrical auxiliary wheels (8) are installed on the material storage shell (105).

6. The feeding mechanism of the regenerated rubber desulfurization tank according to claim 4 is characterized in that: The tops of the two round rods (2) are fixed to the bottom of the fixing block (4), and the front surface of the connecting block (3) is fixed to the rear surface of the sliding block (104).

7. The feeding mechanism of the regenerated rubber desulfurization tank according to claim 5 is characterized in that: The wheel surfaces of the two auxiliary wheels (8) are in contact with the surface of the bracket (101), and the controller (110) is located inside the protective shell (6).